Triple-Loop Control Configuration for Grid-Connected LCL-Filtered Inverters Based on Time-Domain Design

M. Elkayam, D. Vinnikov
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Abstract

This paper concern with the design of single resonant controllers in triple-loop control configuration for three phase grid-connected inverters based on time-domain analysis for precise tracking in order to achieve fast transient response and reduce grid-current harmonics. It is well-known that in grid-connected LCL-filtered inverters, current behavior directly sets the exchange of power between the two. The most commonly used current control configurations are single and double loop control schemes. Recently, several methods have been proposed to enhance system efficiency by modeling triple-loop control architecture for grid-connected inverters. In triple-loop control scheme the outer loop regulates the grid side inductor current, the middle loop regulates capacitor voltage, and the inner loop regulates either inverter side inductor current or capacitor current. Different regulators have been suggested in literature for triple-loop structure, where design of resonant controllers for this structure was barely investigated, especially closed-loop time-domain transient performance analysis.This paper presents time-domain based design of proportional-resonant controller in triple-loop configuration for three-phase grid-connected inverter. Since in triple loop-configuration system variables are measured to fed-back to each control loops, when those variables act as disturbances, they can be easily eliminated in the other control loops. In case most of the disturbance measured and appropriately cancelled in corresponding plants, the current \ voltage regulation problem reduced to tracking challenge only. Therefore, it would be beneficial to impose transient response based on desired magnitude behavior. In addition, control strategy for balancing of the DC-link capacitors voltages is shown herein, in addition to the proposed triple loop control configuration. Experimental and simulations results are also presented to validate the proposed design methodology.
基于时域设计的并网lcl滤波逆变器三环控制配置
本文研究了三相并网逆变器三环控制结构中基于时域分析的单谐振控制器的设计,以实现对三相并网逆变器的精确跟踪,从而实现快速的瞬态响应,降低电网电流谐波。众所周知,在并网的lc滤波逆变器中,电流行为直接决定了两者之间的功率交换。最常用的电流控制配置是单环和双环控制方案。近年来,人们提出了几种通过对并网逆变器的三环控制结构建模来提高系统效率的方法。在三环控制方案中,外环调节电网侧电感电流,中环调节电容器电压,内环调节逆变器侧电感电流或电容器电流。对于三环结构,已有文献提出了不同的调节器,但对该结构的谐振控制器设计,特别是闭环时域暂态性能分析的研究很少。提出了一种基于时域的三相并网逆变器三环路比例谐振控制器设计方法。由于在三环结构系统中测量的变量反馈到每个控制回路,当这些变量作为干扰时,它们可以很容易地在其他控制回路中消除。如果在相应的工厂中测量并适当地消除了大部分干扰,电流/电压调节问题就变成了跟踪问题。因此,基于期望的幅度行为施加瞬态响应将是有益的。此外,除了提出的三环控制配置外,本文还给出了平衡直流链路电容器电压的控制策略。实验和仿真结果验证了所提出的设计方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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